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User defined elements in ANSYS for 2D multiphysics modeling of superconducting magnets

机译:用户定义的超导磁体的ANSYS中的元素

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摘要

Dynamic simulation of superconducting magnets is critical for the design of quench protection systems to prevent potentially damaging temperatures and high voltage from developing after magnet quench. Modeling these scenarios is challenging due to the many multiscale phenomena which impact magnet behavior. These range from conductor scale effects of quench and interfilament coupling currents up to the behavior of the magnet in its powering and protection circuit. In addition, a strong coupling between electromagnetic and thermal domains is required to capture temperature and field dependent material properties and quench behavior. We present a finite element approach which integrates the various effects into the commercial software ANSYS by means of programming new element types. This is shown capable of simulating the strongly coupled transient electromagnetic, thermal, and circuit behavior of superconducting magnets required for quench protection studies. A benchmarking study is presented which shows close agreement between the new ANSYS elements and a COMSOL Multiphysics implementation developed at CERN for dump resistor and coupling loss induced quench based magnet protection of a Nb3Sn block dipole. Following this, the ANSYS implementation is shown reproducing strongly coupled quench back behavior observed during the test of a Nb3Sn superconducting undulator prototype at Lawrence Berkeley National Laboratory.
机译:超导磁体的动态模拟对于淬火保护系统的设计至关重要,以防止磁体淬火后发生潜在损坏的温度和高电压。由于影响磁体行为的多尺度现象,建模这些方案是挑战。这些范围从淬火和沉积耦合电流的导线效应达到其电力保护电路中磁体的行为。此外,需要电磁和热域之间的强耦合来捕获温度和场依赖性材料性能并淬火行为。我们介绍了一种有限元方法,通过编程新元素类型将各种效果集成到商业软件ANSYS中。这表明能够模拟淬火保护研究所需的超导磁体的强耦合的瞬态电磁,热量和电路行为。提出了一个基准测试,其显示了新的ANSYS元件和CERN的COMSOL多体学实施在CERN中,在CERN中开发的用于倾倒电阻和耦合损耗的基于NB3SN块偶极子的磁体保护。在此之后,显示ANSYS实现在劳伦斯伯克利国家实验室的NB3SN超导波形原型测试期间观察到的强烈耦合猝灭背部。

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